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Question

I am trying to write a C++ macro that would take either type or type name as input, and give type as output.

For example:
REMOVE_NAME(int) should be int
REMOVE_NAME(int aNumber) should also be int

I managed to write such a macro (below) and it works, but I'm wondering whether I'm missing a simpler way to accomplish this.

#include <boost/type_traits.hpp>

template <typename T>
struct RemoveNameVoidHelper
{
    typedef typename T::arg1_type type;
};

template <>
struct RemoveNameVoidHelper<boost::function_traits<void()>>
{
    typedef void type;
};

#define REMOVE_NAME(expr) RemoveNameVoidHelper<boost::function_traits<void(expr)>>::type

Any ideas?

Motivation

I'm using this macro to aid with code generation. I have another macro which is used to declare certain methods in class definitions:

#define SLOT(name, type)                            \
    void Slot##name(REMOVE_NAME(type) argument)     \
    {                                               \
        /* Something that uses the argument. */     \
    }                                               \
    void name(type)

I want the user of the SLOT macro to be able to comfortably choose whether he wants to implement his slots inside or outside the class, just like with normal methods. This means that SLOT's type argument can be either a type, or a type with a name. For example:

class SomeClass
{
    SLOT(ImplementedElsewhere, int);
    SLOT(ImplementedHere, int aNumber)
    {
        /* Something that uses aNumber. */
    }
};

Without the REMOVE_NAME macro, my automatically generated Slot... method will not be able to specify its own name for its argument, and thus it will not be able to refer to it.

Of course, this is not the only possible use for this macro.

share|improve this question
    
Yeah. Simpler would be to: not use a MACRO for this. Or if you do, just specify the name separately?! –  sehe Sep 3 '12 at 13:25
    
Check out decltype. –  Joachim Pileborg Sep 3 '12 at 13:31
    
why? Could you use C++ 11 decltype? –  Tom Tanner Sep 3 '12 at 13:33
2  
decltype(int aNumber) is illegal, unfortunately. –  Corvus Corax Sep 3 '12 at 13:38
1  
If you want something "simpler" it would help if you could explain what you want this for, and how you plan to use it. –  Joachim Pileborg Sep 3 '12 at 13:40

1 Answer 1

up vote 2 down vote accepted

I think you're correct; as far as I can tell the only other production where a decl-specifier-seq or type-specifier-seq is followed by an optional declarator is a catch statement, and I don't think that's much use for type extraction. The production parameter-declaration is also used in template-parameter-list, but that's not much use either.

I might define your macro like this, removing the dependency on Boost:

template<typename T> struct remove_name_helper {};
template<typename T> struct remove_name_helper<void(T)> { typedef T type; };
template<> struct remove_name_helper<void()> { typedef void type; };

#define REMOVE_NAME(expr) typename remove_name_helper<void(expr)>>::type
share|improve this answer
    
Thanks! This really is better. By the way, the void specialization is unnecessary with your implementation - it was only necessary to work around the fact that boost doesn't define arg1_type when the function has no parameters. –  Corvus Corax Sep 3 '12 at 15:59

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